249
Views
3
CrossRef citations to date
0
Altmetric
Special Issue: Frontiers of Molecular Simulation in China

Drop movements and replacement on surface driven by shear force via hybrid atomistic–continuum simulations

, &
Pages 855-862 | Received 27 Dec 2015, Accepted 28 Feb 2016, Published online: 06 Apr 2016
 

Abstract

The movements and replacement of a nanoscale drop on a horizontal surface driven by shear force from the other immiscible fluid have been investigated by hybrid atomistic–continuum modelling in this work. The interfacial interaction near the drop, which may not be fully covered by the continuum theories, is modelled by molecular dynamics for accurate capture of transport behaviour, while the bulk flow region is simulated by the lattice Boltzmann method for high efficiency. The momentum exchange between atomistic and continuum regions is realised in a buffer region to couple the multiscale effects, where we propose an artificial solid molecular layer at the outer edge of buffer region to ensure the continuity of shear force between different regions. The influences of moving wall velocity, drop size, surface tension on resistance are examined. Our results show that the resistances increase with the moving wall velocity. A larger drop leads to a larger resistance to drop moving on solid wall, and a larger resistance to bulk flow. A higher surface tension results in a higher resistance to drop movement and bulk flow resistance over the drop because of lower deformation of drop.

Log in via your institution

Log in to Taylor & Francis Online

PDF download + Online access

  • 48 hours access to article PDF & online version
  • Article PDF can be downloaded
  • Article PDF can be printed
USD 61.00 Add to cart

Issue Purchase

  • 30 days online access to complete issue
  • Article PDFs can be downloaded
  • Article PDFs can be printed
USD 827.00 Add to cart

* Local tax will be added as applicable

Related Research

People also read lists articles that other readers of this article have read.

Recommended articles lists articles that we recommend and is powered by our AI driven recommendation engine.

Cited by lists all citing articles based on Crossref citations.
Articles with the Crossref icon will open in a new tab.